//******************************************************************************* // // Copyright 2014 Microsoft // // Licensed under the Apache License, Version 2.0 (the "License"); // you may not use this file except in compliance with the License. // You may obtain a copy of the License at // // http://www.apache.org/licenses/LICENSE-2.0 // // Unless required by applicable law or agreed to in writing, software // distributed under the License is distributed on an "AS IS" BASIS, // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. // See the License for the specific language governing permissions and // limitations under the License. // //******************************************************************************* /// #region JSCop/JsHint /* global operations */ /* jshint -W016 */ /* jshint -W052 */ /// /// msrcrypto, der, sha /// JS3057.AvoidImplicitTypeCoercion /// #endregion JSCop/JsHint var msrcryptoSha1 = (function () { var hashFunction = function (name, der, h, k, truncateTo) { var blockBytes = 64; var hv = h.slice(); var w = new Array(blockBytes); var buffer = []; var blocksProcessed = 0; function hashBlocks(/*@type(Array)*/message) { var blockCount = Math.floor(message.length / blockBytes); var ra, rb, rc, rd, re; var t, block, i, temp, x0, index; // Process each 64-byte block of the message for (block = 0; block < blockCount; block++) { // 0 ≤ t ≤ 15 for (i = 0; i < 16; i++) { index = block * blockBytes + i * 4; // Convert 4 bytes to 32-bit integer w[i] = (message[index] << 24) | (message[index + 1] << 16) | (message[index + 2] << 8) | message[index + 3]; } // 16 ≤ t ≤ 79 for (t = 16; t < 80; t++) { x0 = w[t - 3] ^ w[t - 8] ^ w[t - 14] ^ w[t - 16]; w[t] = (x0 << 1) | (x0 >>> 31); } ra = hv[0]; rb = hv[1]; rc = hv[2]; rd = hv[3]; re = hv[4]; for (i = 0; i < 20; i++) { // Ch(x, y, z)=(x & y) ^ (~x & z) temp = ((ra << 5) | (ra >>> 27)) & 0xFFFFFFFF; temp += (rb & rc) ^ ((~rb) & rd); temp = (temp + re + k[i] + w[i]) & 0xFFFFFFFF; re = rd; rd = rc; rc = ((rb << 30) | (rb >>> 2)) & 0xFFFFFFFF; rb = ra; ra = temp; } for (i = 20; i < 40; i++) { //Parity(x, y, z)= x ^ y ^ z temp = ((ra << 5) | (ra >>> 27)) & 0xFFFFFFFF; temp += rb ^ rc ^ rd; temp = (temp + re + k[i] + w[i]) & 0xFFFFFFFF; re = rd; rd = rc; rc = ((rb << 30) | (rb >>> 2)) & 0xFFFFFFFF; rb = ra; ra = temp; } for (i = 40; i < 60; i++) { //Maj(x, y, z)=(x & y) ^ (x & z) ^ (y & z) temp = ((ra << 5) | (ra >>> 27)) & 0xFFFFFFFF; temp += (rb & rc) ^ (rb & rd) ^ (rc & rd); temp = (temp + re + k[i] + w[i]) & 0xFFFFFFFF; re = rd; rd = rc; rc = ((rb << 30) | (rb >>> 2)) & 0xFFFFFFFF; rb = ra; ra = temp; } for (i = 60; i < 80; i++) { //Parity(x, y, z)= x ^ y ^ z temp = ((ra << 5) | (ra >>> 27)) & 0xFFFFFFFF; temp += rb ^ rc ^ rd; temp = (temp + re + k[i] + w[i]) & 0xFFFFFFFF; re = rd; rd = rc; rc = ((rb << 30) | (rb >>> 2)) & 0xFFFFFFFF; rb = ra; ra = temp; } // Need to mask 32-bits when using regular arrays hv[0] += ra & 0xFFFFFFFF; hv[1] += rb & 0xFFFFFFFF; hv[2] += rc & 0xFFFFFFFF; hv[3] += rd & 0xFFFFFFFF; hv[4] += re & 0xFFFFFFFF; } // Keep track of the number of blocks processed. // We have to put the total message size into the padding. blocksProcessed += blockCount; // Return the unprocessed data. return message.slice(blockCount * blockBytes); } function hashToBytes() { var hash = new Array(256); // Copy the 32-bit values to a byte array for (var i = 0, byteIndex = 0; i < 8; i += 1, byteIndex += 4) { hash[byteIndex] = hv[i] >>> 24; hash[byteIndex + 1] = hv[i] >>> 16 & 0xFF; hash[byteIndex + 2] = hv[i] >>> 8 & 0xFF; hash[byteIndex + 3] = hv[i] & 0xFF; } return hash.slice(0, truncateTo / 8); } // This can be optimized. // Currently the amount of padding is computed. Then a new array, big enough // to hold the message + padding is created. The message is copied to the // new array and the padding is placed at the end. // We don't really need to create an entire new array and copy to it. // We can just build the last padded block and store it. // Then when computing the hash, substitute it for the last message block. function padBlock( /*@type(Array)*/ message) { var padLen = blockBytes - message.length; // If there is 8 or less bytes of padding, pad an additional block. if (padLen <= 8) { padLen += blockBytes; } // Create a new Array that will contain the message + padding var paddedMessage = message.slice(); // Set the 1 bit at the end of the message data paddedMessage.push(128); // Pad the array with zero. Leave 4 bytes for the message size. for (var i = 1; i < padLen - 4; i++) { paddedMessage.push(0); } // Set the length equal to the previous data len + the new data len var messageLenBits = (message.length + blocksProcessed * blockBytes) * 8; // Set the message length in the last 4 bytes paddedMessage.push(messageLenBits >>> 24 & 255); paddedMessage.push(messageLenBits >>> 16 & 255); paddedMessage.push(messageLenBits >>> 8 & 255); paddedMessage.push(messageLenBits & 255); return paddedMessage; } function bufferToArray(buffer) { // Checking for slice method to determine if this a regular array. if (buffer.pop) { return buffer; } return (buffer.length === 1) ? [buffer[0]] : Array.apply(null, buffer); } function /*@type(Array)*/ computeHash(messageBytes) { // Convert the input to an Array - it could be a typed array buffer = hashBlocks(bufferToArray(messageBytes)); return finish(); } function process(messageBytes) { // Append the new data to the buffer (previous unprocessed data) // Convert the input to an Array - it could be a typed array buffer = buffer.concat(bufferToArray(messageBytes)); // If there is at least one block of data, hash it if (buffer.length >= 64) { // The remaining unprocessed data goes back into the buffer buffer = hashBlocks(buffer); } return; } function finish() { // All the full blocks of data have been processed. Now we pad the rest and hash. // Buffer should be empty now. if (hashBlocks(padBlock(buffer)).length !== 0) { throw new Error("buffer.length !== 0"); } var result = hashToBytes(); // Clear the hash values so this instance can be reused buffer = []; hv = h.slice(); blocksProcessed = 0; return result; } return { name: name, computeHash: computeHash, process: process, finish: finish, der: der, hashLen: truncateTo, maxMessageSize: 0xFFFFFFFF // (2^32 - 1 is max array size in JavaScript) }; }; var k, h, der, upd = msrcryptoUtilities.unpackData; h = upd("Z0UjAe/Nq4mYutz+EDJUdsPS4fA=", 4, 1); k = upd("WoJ5mVqCeZlagnmZWoJ5mVqCeZlagnmZWoJ5mVqCeZlagnmZWoJ5mVqCeZlagnmZWoJ5mVqCeZlagnmZWoJ5mVqCeZlagnmZWoJ5mVqCeZlu2euhbtnroW7Z66Fu2euhbtnroW7Z66Fu2euhbtnroW7Z66Fu2euhbtnroW7Z66Fu2euhbtnroW7Z66Fu2euhbtnroW7Z66Fu2euhbtnroY8bvNyPG7zcjxu83I8bvNyPG7zcjxu83I8bvNyPG7zcjxu83I8bvNyPG7zcjxu83I8bvNyPG7zcjxu83I8bvNyPG7zcjxu83I8bvNyPG7zcymLB1spiwdbKYsHWymLB1spiwdbKYsHWymLB1spiwdbKYsHWymLB1spiwdbKYsHWymLB1spiwdbKYsHWymLB1spiwdbKYsHWymLB1spiwdY", 4, 1); // DER encoding der = upd("MCEwCQYFKw4DAhoFAAQU"); return { sha1: hashFunction("SHA-1", der, h, k, 160) }; })(); if (typeof operations !== "undefined") { msrcryptoSha1.hash = function (/*@dynamic*/p) { if (p.operationSubType === "process") { msrcryptoSha1.sha1.process(p.buffer); return; } if (p.operationSubType === "finish") { return msrcryptoSha1.sha1.finish(); } return msrcryptoSha1.sha1.computeHash(p.buffer); }; operations.register("digest", "sha-1", msrcryptoSha1.hash); } msrcryptoHashFunctions["sha-1"] = msrcryptoSha1.sha1;